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Role of matrix and fusion proteins in budding of Sendai virus
T Takimoto1, K G Murti, T Bousse
1Department of Virology and Molecular Biology, St. Jude Children's Research Hospital, Memphis, Tennessee 38105, USA. toru.takimoto@stjude.org
Abstract:
Paramyxoviruses are assembled at the surface of infected cells, where virions are formed by the process of budding. We investigated the roles of three Sendai virus (SV) membrane proteins in the production of virus-like particles. Expression of matrix (M) proteins from cDNA induced the budding and release of virus-like particles that contained M, as was previously observed with human parainfluenza virus type 1 (hPIV1). Expression of SV fusion (F) glycoprotein from cDNA caused the release of virus-like particles bearing surface F, although their release was less efficient than that of particles bearing M protein. Cells that expressed only hemagglutinin-neuraminidase (HN) released no HN-containing vesicles. Coexpression of M and F proteins enhanced the release of F protein by a factor greater than 4. The virus-like particles containing F and M were found in different density gradient fractions of the media of cells that coexpressed M and F, a finding that suggests that the two proteins formed separate vesicles and did not interact directly. Vesicles released by M or F proteins also contained cellular actin; therefore, actin may be involved in the budding process induced by viral M or F proteins. Deletion of C-terminal residues of M protein, which has a sequence similar to that of an actin-binding domain, significantly reduced release of the particles into medium. Site-directed mutagenesis of the cytoplasmic tail of F revealed two regions that affect the efficiency of budding: one domain comprising five consecutive amino acids conserved in SV and hPIV1 and one domain that is similar to the actin-binding domain required for budding induced by M protein. Our results indicate that both M and F proteins are able to drive the budding of SV and propose the possible role of actin in the budding process.
Insights
Sendai virus (SV) matrix (M) and fusion (F) proteins independently drive the budding of virus-like particles. Cellular actin appears crucial for this budding process, with specific domains in M and F proteins influencing efficiency.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- Paramyxoviruses assemble and bud from infected cell surfaces.
- The roles of specific viral proteins in budding are not fully understood.
Purpose of the Study:
- To investigate the roles of Sendai virus (SV) matrix (M) and fusion (F) glycoproteins in virus-like particle (VLP) production.
- To explore the potential involvement of cellular actin in the budding process.
Main Methods:
- Expression of SV M and F proteins from cDNA in host cells.
- Analysis of released virus-like particles using density gradient fractionation.
- Site-directed mutagenesis of M and F proteins to identify key domains.
Main Results:
- SV M protein expression alone induced VLP release.
- SV F protein expression also induced VLP release, though less efficiently than M protein.
- Coexpression of M and F proteins significantly enhanced F protein release.
- VLPs containing M and F proteins were found in separate fractions, suggesting independent vesicle formation.
- Cellular actin was detected in M- and F-induced vesicles, and mutations in M and F actin-binding domains reduced particle release.
Conclusions:
- Both SV M and F proteins can independently drive virus budding.
- Cellular actin likely plays a significant role in the budding process mediated by M and F proteins.
- Specific domains within M and F proteins are critical for efficient budding.
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